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Navarrete, B.

Publications and source records attributed to Navarrete, B..

2 recordsLinked to original sources

Perinuclear anchoring of telomeres enables plant infection by Ustilago maydis

The spatial organization of the genome is critical for cellular function, yet its contribution to the success of host-pathogen interactions remains poorly understood. A conserved hallmark of nuclear architecture is the perinuclear localization of heterochromatin, which includes not only specific chromosomal subdomains but also major structural elements like centromeres and telomeres. To determine the importance of this organization during fungal pathogenesis, we used the maize pathogen Ustilago maydis as an infection model system. We identify the lamina-associated protein homolog, Lem2, as a molecular tether for telomeres and show its deletion abrogates fungal penetration, causing developmental arrest at the appressorium stage. Mechanistically, this infection defect is associated with a failure in nuclear migration. Using hyphal filaments induced under axenic conditions, we observed that mutant nuclei consistently fail to transit from the mother cell into the growing filament. Furthermore, RNA-seq analysis correlates this failure with a marked misregulation of the DNA damage response (DDR) and cell cycle control, including the aberrant expression of multiple checkpoint and signaling proteins. Crucially, artificially tethering telomeres to the nuclear periphery in this mutant partially restores the nuclear migration defect and plant penetration, while simultaneously suppressing the aberrant DDR. This work establishes a functional link between a specific spatial nuclear configuration and fungal infectivity, revealing the conserved telomere-anchoring machinery as a potential target for novel antifungal strategies.

molecular biology↗

Systematic characterization of Ustilago maydis sirtuins shows Sir2 as a modulator of pathogenic gene expression

Phytopathogenic fungi must adapt to the different environmental conditions found during infection and avoid the immune response of the plant. For these adaptations, fungi must tightly control gene expression, allowing sequential changes in transcriptional programs. In addition to transcription factors, chromatin modification is used by eukaryotic cells as a different layer of transcriptional control. Specifically, the acetylation of histones is one of the chromatin modifications with a strong impact on gene expression. Hyperacetylated regions usually correlate with high transcription and hypoacetylated areas with low transcription. Thus, histone deacetylases (HDACs) commonly act as repressors of transcription. One member of the family of HDACs is represented by sirtuins, which are deacetylases dependent on NAD+, and, thus, their activity is considered to be related to the physiological stage of the cells. This property makes sirtuins good regulators during environmental changes. However, only a few examples exist, and with differences in the extent of the implication of the role of sirtuins during fungal phytopathogenesis. In this work, we have performed a systematic study of sirtuins in the maize pathogen Ustilago maydis, finding Sir2 to be involved in the dimorphic switch from yeast cell to filament and pathogenic development. Specifically, the deletion of sir2 promotes filamentation, whereas its overexpression highly reduces tumor formation in the plant. Moreover, transcriptomic analysis revealed that Sir2 represses genes that are expressed during biotrophism development. Interestingly, our results suggest that this repressive effect is not through histone deacetylation, indicating a different target of Sir2 in this fungus.

molecular biology↗